Artigo
Efficient set similarity join on multi-attribute data using lightweight filters
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Brazilian Computer Society
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We consider the problem of efficiently answering set similarity joins on multi-attribute data. Traditionalset similarity join algorithms assume string data represented by a single set and, thus, miss the opportunity to exploitpredicates over multiple attributes to reduce the number of similarity computations. In this article, we present a frame-work to enhance existing algorithms with additional filters for dealing with multi-attribute data. We then instantiatethis framework with a lightweight filtering technique based on a simple, yet effective data structure, for which exact andprobabilistic implementations are evaluated. In this context, we devise a cost model to identify the best attribute order-ing to reduce processing time. Moreover, alternative approaches are also investigated and a new algorithm combiningkey ideas from previous work is introduced. Finally, we present a thorough experimental evaluation, which demonstratesthat our main proposal is efficient and significantly outperforms competing algorithms.
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Submitted by Eliana Bernardes (eliana@biblioteca.ufla.br) on 2022-05-13T19:55:40Z
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Approved for entry into archive by Eliana Bernardes (eliana@biblioteca.ufla.br) on 2022-05-13T19:55:59Z (GMT) No. of bitstreams: 0
Made available in DSpace on 2022-05-13T19:55:59Z (GMT). No. of bitstreams: 0 Previous issue date: 2021-09
Approved for entry into archive by Eliana Bernardes (eliana@biblioteca.ufla.br) on 2022-05-13T19:55:59Z (GMT) No. of bitstreams: 0
Made available in DSpace on 2022-05-13T19:55:59Z (GMT). No. of bitstreams: 0 Previous issue date: 2021-09
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RIBEIRO, L. A.; BORGES, F. F.; OLIVEIRA, D. Efficient set similarity join on multi-attribute data using lightweight filters. Journal of Information and Data Management, [S.l.], v. 12, n. 3, p. 226-241, Sept. 2021.
